There is provided a power amplifier capable of improving harmonics characteristics of an output signal of an amplifier circuit by compensating a phase of the output signal. A power amplifier according to an aspect of the invention may include: an amplification section having a plurality of amplification units each amplifying a radio frequency (rf) signal according to a gain being controlled; a phase correction section performing phase correction by removing harmonic components of respective output signals from the plurality of amplification units of the amplification section; and a coupling section coupling the respective output signals phase-corrected by the phase correction section.
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5. A power amplifier, comprising:
an amplification section having a plurality of amplification units each for amplifying a radio frequency (rf) signal according to a controllable gain;
a phase correction section for performing phase correction by removing harmonic components of respective output signals from the plurality of amplification units of the amplification section;
a coupling section for coupling the respective output signals phase-corrected by the phase correction section; and
a filter section for removing harmonic components of the output signals coupled by the coupling section, wherein
the rf signal is a balance rf signal being input to each of first and second cascode amplification devices of each of the plurality of amplification units.
2. A power amplifier, comprising:
an amplification section having a plurality of amplification units each for amplifying a radio frequency (rf) signal according to a controllable gain;
a phase correction section for performing phase correction by removing harmonic components of respective output signals from the plurality of amplification units of the amplification section;
a coupling section for coupling the respective output signals phase-corrected by the phase correction section; and
a filter section for removing harmonic components of the output signals coupled by the coupling section, wherein
the filter section comprises a notch filter for removing second harmonic components of an output signal from the coupling section and matching an impedance of an output path of the output signal from the coupling section.
1. A power amplifier, comprising:
an amplification section having a plurality of amplification units each for amplifying a radio frequency (rf) signal according to a controllable gain;
a phase correction section for performing phase correction by removing harmonic components of respective output signals from the plurality of amplification units of the amplification section; and
a coupling section for coupling the respective output signals phase-corrected by the phase correction section, wherein
the coupling section comprises a transformer including:
a plurality of primary windings respectively corresponding to the plurality of amplification units of the amplification section for receiving the respective output signals; and
a secondary winding electromagnetically coupled with the plurality of primary windings for coupling the output signals being input to the plurality of primary windings.
3. The power amplifier of
each of the plurality of amplification units of the amplification section comprises first and second cascode amplification devices,
the first cascode amplification device is electrically connected between one end of a corresponding primary winding among the plurality of primary windings of the coupling section and the ground,
the second cascode amplification device is electrically connected between the other end of the corresponding primary winding and the ground, and
the first cascode amplification device and the second cascode amplification device are connected in common to each other and have a variable gain, according to a control signal from outside.
4. The power amplifier of
6. The power amplifier of
7. The power amplifier of
8. The power amplifier of
9. The power amplifier of
10. The power amplifier of
11. The power amplifier of
12. The power amplifier of
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This application claims the priority of Korean Patent Application No. 10-2010-0009989 filed on Feb. 3, 2010, in the Korean Intellectual Property Office, the disclosure of which is incorporated herein by reference.
1. Field of the Invention
The present invention relates to a power amplifier, and more particularly, to a power amplifier capable of improving the harmonics characteristics of an output signal of an amplifier circuit by correcting a phase of the output signal.
2. Description of the Related Art
Electronic devices employing wireless communications circuits have recently come into widespread since those electronic devices allow for ease of use and mobility and easy setup and maintenance.
Typical examples of electronic devices employing wireless communications circuits may include mobile communications terminals and personal digital assistants.
A wireless communications electronic device uses a transmitter circuit in order to transmit a signal including information.
The transmitter circuit necessarily uses a power amplifier that amplifies the power of a signal to be transmitted.
A signal being output from the power amplifier is subjected to impedance matching and is output through an antenna. Here, the power amplifier is required to have harmonics characteristics of at least −10 dBm or less.
Therefore, in order to remove harmonic components from the output signal, a notch filter used to remove harmonics is provided at an output terminal.
That is, as shown in
However, the balance signals amplified by the power amplifier according to the related art are converted into a single signal while being output. Therefore, unbalanced signal amplification may be caused, thereby deteriorating second harmonic characteristics. Thus, there is a need for power amplifiers capable of improving second harmonic characteristics.
An aspect of the present invention provides a power amplifier capable of improving the harmonics characteristics of an output signal of an amplifier circuit by compensating a phase of the output signal.
According to an aspect of the present invention, there is provided a power amplifier comprising: an amplification section having a plurality of amplification units each amplifying a radio frequency (RF) signal according to a gain being controlled; a phase correction section performing phase correction by removing harmonic components of respective output signals from the plurality of amplification units of the amplification section; and a coupling section coupling the respective output signals phase-corrected by the phase correction section.
The power amplifier may further include a filter section removing harmonic components of the output signals coupled by the coupling section.
Each of the plurality of amplification units may comprise at least two cascode amplification devices.
The phase correction section may include a plurality of capacitors electrically connected between respective output terminals of the plurality of amplification units and a ground and bypassing harmonic components of the output terminals from the plurality of amplification units on the ground.
The coupling section may include a transformer including: a plurality of primary windings respectively corresponding to the plurality of amplification units of the amplification section and receiving output signals; and a secondary winding electromagnetically coupled with the plurality of primary windings and coupling signals and coupling the output signals being input to the plurality of primary windings.
The filter section may include a notch filter removing second harmonic components of an output signal from the coupling section and matching an impedance of an output path of the output signal from the coupling section.
Each of the plurality of amplification units of the amplification section may include first and second cascode amplification devices, the first cascode amplification device may be electrically connected between one end of a corresponding primary winding among the plurality of primary windings of the coupling section and the ground, the second cascode amplification device may be electrically connected between the other end of the corresponding primary winding and the ground, and the first cascode amplification device and the second cascode amplification device may be connected in common to each other and have a variable gain, according to a control signal from outside.
The phase correction section may include a plurality of capacitors connected between one end and the other end of each of the plurality of primary windings and the ground and connected in parallel with the first and second cascode amplification devices to remove harmonic components of output signals from the first and second cascode amplification devices.
The RF signal may be a balance RF signal being input to each of the first and second cascode amplification units of each of the plurality of amplification units.
The above and other aspects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
Exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings.
Referring to
The amplification section 110 may include a plurality of amplification units 111 to 11N, that is, first to Nth (where N is a natural number) amplification units 111 to 11N.
RF (radio frequency) signals are input to the plurality of amplification units 111 to 11N. Here, the RF signals may be balance RF signals consisting of an RF signal having a positive (+) signal level and an RF signal having a negative (−) signal level.
The plurality of amplification units 111 to 11N may amplify and output the RF signals being input, according to a control signal being externally applied.
The phase correction section 120 may remove harmonic components from respective output signals of the plurality of amplification units 111 to 11N of the amplification section 110 to thereby correct respective phases of the output signals of the plurality of amplification units 111 to 11N.
The phase correction section 120 may include a plurality of capacitors 121 to 122N. The plurality of capacitors 121 to 122N may be respectively electrically connected to corresponding output terminals of the plurality of amplification units 111 to 11N.
For example, when balance RF signals are input to the plurality of amplification units 111 to 11N, the plurality of amplification units 111 to 11N output the balance RF signals being amplified, and the plurality of capacitors 121 to 122N may be respectively electrically connected to the output terminals of the plurality of amplification units 111 to 11N.
Therefore, when the plurality of amplification units 111 to 11N are first to Nth amplification units, the plurality of capacitors 121 to 122N may consist of first to 2Nth capacitors.
That is, one amplification unit that outputs balance RF signals may have two output terminals, and two capacitors may be electrically connected to each of the corresponding output terminals.
The coupling section 130 may include at least one transformer.
The transformer may have a plurality of primary windings P1 to PN and a secondary winding S.
The plurality of primary windings P1 to PN may respectively correspond to the plurality of amplification units 111 to 11N and receive the respective output signals from the plurality of amplification units 111 to 11N.
The secondary winding S may be electromagnetically coupled with the primary windings to thereby couple the power of the output signals that are input to the plurality primary windings P1 to PN.
DC driving power Ba may be supplied to each of the primary windings P1 to PN.
The filter section 140 may remove harmonic components of the signals coupled by the coupling section 130 and match the impedance of an output path of the coupled signals.
For example, the filter section 140 may include a notch filter provided across both ends of the secondary winding S of the coupling section 130, remove harmonic components of the coupled signals, and match the impedance of the output path of the coupled signals.
Therefore, the filter section 140 may include a first filter capacitor C1 and a first inductor L1 that are electrically connected between one end of the secondary winding S and a ground and are connected in series with each other; a second inductor L2 that is connected in series between the one end of the secondary winding S and an output terminal Pout; and a second filter capacitor C2 and a third inductor L3 that are connected in series to each other between the one end of the secondary winding S and the output terminal Pout and are connected in parallel with the second inductor L2.
Furthermore, the filter section 140 may include a third filter capacitor C3 and a fourth inductor L4 that are electrically connected between the other end of the secondary winding S and a ground and are connected in series to each other, and a fifth inductor L5 that is electrically connected between the other end of the secondary winding S and the ground and is connected in parallel with the third filter capacitor C3 and the fourth inductor L4.
Referring to
For example, the first and second cascode amplification devices 111a and 111b of the first amplification unit 111 may respectively include PMOS and NMOS amplification devices that are connected in series with each other. An RF signal may be input to a gate of the NMOS amplification device of the first and second cascode amplification devices 111a and 111b, a source of the NMOS amplification device may be connected to a ground, and a drain of the NMOS amplification device may be connected to the PMOS amplification device. The PMOS amplification device of the first and second cascode amplification devices 111a and 111b may have a gate connected in common to receive a control signal being externally applied, thereby varying its gain. A drain of the PMOS amplification device may be connected to the NMOS amplification device, and a source of the PMOS amplification device may be connected to one end or the other end of the corresponding primary winding of the coupling section 130. The source of the PMOS amplification device may be connected to the one end or the other end of the corresponding primary winding of the coupling section 130 by wire bonding wb.
A detailed description of the Nth amplification unit 11N and the first and second cascode amplification devices 11Na and 11Nb, which have the same connection as above, will be omitted.
The plurality of capacitors 121 to 122N of the phase correction section 120 may be electrically connected to the corresponding amplification units. That is, as shown in
Referring to
Referring to
On the other hand, as shown in
Referring to
Referring to
Furthermore, with reference to
As described above, according to the embodiment of the invention, harmonic components are first removed before signal coupling by correcting phases of output signals from an amplification unit, and harmonic components are then removed after signal coupling, so that a reduction of harmonic components to −5 dBm or less required by a user can be achieved, and a balanced phase difference between output signals can be maintained.
As set forth above, according to exemplary embodiments of the invention, DC components of output signals are removed from an amplifier circuit through capacitors to thereby correct phases of the output signals of the amplifier circuit, so that second harmonic characteristics of the output signals can be improved.
While the present invention has been shown and described in connection with the exemplary embodiments, it will be apparent to those skilled in the art that modifications and variations can be made without departing from the spirit and scope of the invention as defined by the appended claims.
Kim, Ki Joong, Kim, Youn Suk, Song, Young Jean, Choi, Jae Hyouck, Won, Jun Goo
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Nov 29 2010 | KIM, KI JOONG | SAMSUNG ELECTRO-MECHANICS CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025685 | /0310 | |
Nov 29 2010 | KIM, YOUN SUK | SAMSUNG ELECTRO-MECHANICS CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025685 | /0310 | |
Nov 29 2010 | SONG, YOUNG JEAN | SAMSUNG ELECTRO-MECHANICS CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025685 | /0310 | |
Nov 29 2010 | CHOI, JAE HYOUCK | SAMSUNG ELECTRO-MECHANICS CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025685 | /0310 | |
Nov 29 2010 | WON, JUN GOO | SAMSUNG ELECTRO-MECHANICS CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 025685 | /0310 | |
Jan 24 2011 | Samsung Electro-Mechanics Co., Ltd. | (assignment on the face of the patent) | / |
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